Technical field of the present invention
[0001] The present invention relates to a crystallizer and to a method for treating produced
water.
Technological background of the present invention
[0002] Hydraulic fracturing is becoming a desirable method for extracting hydrocarbons.
However, this method is being given scrutiny by public and regulatory agencies due
to their extensive requirement for and consumption of water.
[0003] This problem is exacerbated, for example in certain regions of the United States,
because there is a water shortage to contend with. For example the Permian Basin in
Texas is one such area so there is a continuous need for methods that use water more
efficiently in the hydraulic fracturing operations.
[0004] Typically the produced water that is recovered is characterized by unusually high
percentages of dissolved solids (TDS) in the range of 50,000 p[arts]p[er]m[illion]
to 600,000 p[arts]p[er]m[illion] which makes these types of water not suitable for
reverse osmosis units. Evaporative crystallization (EC) technologies are also not
desirable due to their low efficiencies due to the heat of evaporation of water.
Disclosure of the present invention: object, solution, advantages
[0005] Starting from the disadvantages and shortcomings as described above as well as taking
the prior art as discussed into account, an object of the present invention is to
overcome the limitations and problems that earlier apparatus and methods have experienced.
[0006] This object is accomplished by a crystallizer comprising the features of claim 1
as well as by a method comprising the features of claim 6. Advantageous embodiments,
expedient improvements and other optional features of the present invention are set
forth herein and disclosed in the respective dependent claims.
[0007] The present invention basically provides for a crystallizer and method for water
reclamation, more particularly for a liquid nitrogen (LIN) based crystallizer and
its use in reclaiming water from oil and gas produced water streams.
[0008] More particularly, the present invention provides for a crystallizer for treatment
of produced water from oil and gas production processes, and a method of using the
crystallizer for treating produced water from oil and gas production processes.
[0009] In a first embodiment of the present invention, there is disclosed a crystallizer
comprising a chamber being cylindrical in shape and comprising an interior wall and
a top and a bottom, the chamber being in fluid communication with a pipe for introducing
produced water, the pipe is in fluid communication with a porous pipe to allow for
distribution of the produced water through the interior of the chamber; a source of
gaseous nitrogen (GAN) in fluid communication with a nozzle wherein the nozzle is
located inside the chamber and is in fluid communication with an interior pipe which
is further in fluid communication with the produced water; at least one scraper which
is mounted circumferentially about the porous pipe and having arms that extend outwardly
from the scraper center in contact with the interior wall of the chamber thereby scraping
salt crystals on the interior wall of the chamber; and a top pipe in fluid communication
with the chamber thereby to remove fresh water from the chamber.
[0010] According to an advantageous embodiment of the present invention, the produced water
may be from an oil and gas production process.
[0011] In an expedient embodiment of the present invention, the gaseous nitrogen (GAN) may
be formed by feeding liquid nitrogen (LIN) to a fluid temperature control system.
[0012] According to a favoured embodiment of the present invention, gaseous nitrogen (GAN)
may be recovered from the chamber.
[0013] In a preferred embodiment of the present invention, the gaseous nitrogen (GAN) may
be fed to the fluid temperature control system.
[0014] According to an advantageous embodiment of the present invention, the porous pipe
may distribute the produced water throughout the chamber.
[0015] In an expedient embodiment of the present invention, the nozzle may feed the produced
water and gaseous nitrogen (GAN) to the interior pipe.
[0016] According to a favoured embodiment of the present invention, slush or ice crystals
may be formed in the interior pipe.
[0017] In a preferred embodiment of the present invention, the scraper may be operated periodically.
[0018] According to an advantageous embodiment of the present invention, the scraper may
rotate between 0 degree and 180 degree.
[0019] In an expedient embodiment of the present invention, salts removal means from the
bottom of the chamber may be provided.
[0020] In a second embodiment of the present invention, there is disclosed a method for
treating produced water, comprising the steps of:
- a) feeding produced water to a porous pipe in a chamber wherein the chamber is cylindrically
shaped having an interior wall with a top and a bottom;
- b) feeding gaseous nitrogen to a nozzle present in the chamber, wherein the nozzle
is in fluid communication with an interior pipe;
- c) feeding the produced water to the interior pipe wherein slush is formed in the
pipe and this slush is forced through the interior pipe to the top of the chamber;
- d) operating at least one scraper which is mounted circumferentially about the porous
pipe and having arms that extend outwardly from the scraper center in contact with
the interior wall of the chamber wherein the scraper will contact and remove salt
crystals from the interior walls of the chamber;
- e) recovering salt crystals from the bottom of the chamber; and
- f) recovering fresh water from the chamber.
[0021] According to an advantageous embodiment of the present invention, the produced water
may be from an oil and gas production process.
[0022] In an expedient embodiment of the present invention, the gaseous nitrogen (GAN) may
be formed by feeding liquid nitrogen (LIN) to a fluid temperature control system.
[0023] According to a favoured embodiment of the present invention, gaseous nitrogen (GAN)
may be recovered from the chamber.
[0024] In a preferred embodiment of the present invention, the gaseous nitrogen (GAN) may
be fed to the fluid temperature control system.
[0025] According to an advantageous embodiment of the present invention, the porous pipe
may distribute the produced water throughout the chamber.
[0026] In an expedient embodiment of the present invention, the nozzle may feed the produced
water and gaseous nitrogen (GAN) to the interior pipe.
[0027] According to a favoured embodiment of the present invention, slush or ice crystals
may be formed in the interior pipe.
[0028] In a preferred embodiment of the present invention, the scraper may be operated periodically.
[0029] According to an advantageous embodiment of the present invention, the scraper may
rotate between 0 degree and 180 degree.
[0030] In an expedient embodiment of the present invention, salts may be removed from the
bottom of the chamber.
[0031] According to a favoured embodiment of the present invention, the fresh water may
be recovered from the chamber through a top pipe.
[0032] The gaseous nitrogen is typically formed by feeding liquid nitrogen to a fluid temperature
control system which can cool process fluids while reducing the risk of freezing.
[0033] The gaseous nitrogen is also recovered from the chamber after it has flowed to the
top of the chamber and this recovered nitrogen can be fed to the fluid temperature
control system to provide some heat exchange before being fed into the chamber.
[0034] The produced water is fed to a porous pipe which can be any pipe constructed in a
manner to allow for the distribution of the produced water throughout the chamber.
[0035] The nozzle will feed both the gaseous nitrogen and the produced water to the pipe
present in the chamber. The interaction of the gas and produced water will produce
slush or ice crystals which will flow upwards through the pipe to the top of the chamber
where the slush or ice crystals will be recovered as fresh water and removed from
the chamber.
[0036] Depending upon the throughput of the crystallizer, the flow rates for the gases will
vary. The liquid nitrogen flow is directly dependent upon the cooling duty for the
crystallizer whether it is a size of 18.93 litres per minute (= of five gallon per
minute) or larger.
[0037] The produced water achieves supersaturation as it enters the crystallizer and the
ice solubility limits of -4°C to -10°C are reached. Ice crystals will then start forming
and the solution will advance temperature wise to the eutectic point. At the eutectic
point, salt will start coming out of the produced water.
[0038] The scraper is a device that is mounted circumferentially about the porous pipe.
The scraper has arms that extend outwards from its center and contact the interior
walls of the chamber. The scraper will be operated periodically and rotated between
0 degree and 180 degree so that the arms will contact any salts that have formed on
the interior walls of the chamber. These salts will then drop to the bottom of the
chamber where they can be recovered in solution from the bottom of the chamber and
used accordingly.
[0039] The scraper is typically driven by an electric motor or through exhaust gaseous nitrogen.
The scraper will contact and clean the internal surface of the crystallizer to remove
salt deposition that can occur. This keeps the surface of the crystallizer clean thereby
improving thermal efficiency of the operation as well as improving the yield of salt.
[0040] The various components of the crystallizer unit could be made from plastics or polymeric
materials or ordinary steel coated with fluoro polymers. Since this is a low temperature
design for water reclamation there is little likelihood of scaling and fouling effects
and therefore the unit does not require more expensive material further lowering the
overall capital expenditures (CapEx) for the unit.
[0041] The nozzle is typically designed to avoid clogging while rapidly cooling and assisting
in the crystallization of ice crystals from the water feed through the expansion of
liquid nitrogen (LIN).
[0042] Previous attempts at commercialization of indirect crystallizers to treat high total
dissolved solids water were less successful due to the high capital expenditures (CapEx)
and operating expenditures (OpEx) involved in the separation of ice and salt crystals
as well as the cooling loop and refrigerant compressor design.
[0043] The present invention avoids these difficulties because the separation of ice and
salt is performed in the same unit using the same fluid thereby lowering capital expenditures
(CapEx) and operating expenditures (OpEx) by intensifying energy but also mass exchange
in one unit.
[0044] Further the crystallizer of the present invention has a lower energy requirement
compared to distillation or evaporative crystallizers as the latent heat of fusion
of ice is only one seventh that of the latent heat of vaporization.
[0045] The lower operating temperatures further result in minimizing scaling and corrosion
effects from the water present in the crystallizer chamber. This allows the operator
to use lower cost materials of construction.
[0046] The high surface area by the direct contact between the produced water and liquid
nitrogen results in a greater heat transfer coefficient.
[0047] The design per the present invention allows for no pretreatment of the produced water
before being treated in the crystallizer.
[0048] The present invention further provides for the recovery of salts in near pure form
allowing for their reuse or sale for use in other applications.
[0049] The present invention provides for a modular and movable crystallizer allowing for
the unit to be moved to where there is a need to treat produced water.
[0050] The present invention further provides a high turn down ratio or TDR. This reflects
the maximum capacity to minimum capacity in terms of flow so a unit with good TDR
is desirable as when the feed flow changes the unit can adjust and still perform the
desired work without upset the operability of the unit.
Brief description of the drawings
[0051] For a more complete understanding of the present embodiment disclosures and as already
discussed above, there are several options to embody as well as to improve the teaching
of the present invention in an advantageous manner. To this aim, reference may be
made to the claims dependent on claim 1 as well as on claim 6; further improvements,
features and advantages of the present invention are explained below in more detail
with reference to particular and preferred embodiments by way of non-limiting example
and to the appended drawing figure taken in conjunction with the following description
of exemplary embodiments, of which:
FIG. 1 is a schematic of a crystallizer according to the present invention, said crystallizer
being used in and/or working according to the method of the present invention.
Detailed description of the drawings;
best way of embodying the present invention
[0052] Before explaining the inventive embodiments in detail, it is to be understood that
the present invention is not limited in its application to the details of construction
and arrangement of parts illustrated in the accompanying drawings, since the present
invention is capable of other embodiments and being practiced or carried out in various
ways. Also, it is to be understood that the phraseology or terminology employed herein
is for the purpose of description and not of limitation.
[0053] In the description above and below, terms such as horizontal, upright, vertical,
above, below, beneath and the like, are used solely for the purpose of clarity illustrating
the present invention and should not be taken as words of limitation. The drawings
are for the purpose of illustrating the present invention and are not intended to
be to scale.
[0054] A crystallizer is shown in FIG. 1 as well as a schematic of the operation of the
crystallizer in the method of the present invention. Produced water from an oil and
gas production process is fed through line 4 to a porous pipe G which will distribute
the produced water throughout the chamber C.
[0055] Liquid nitrogen (LIN) is fed from a liquid nitrogen (LIN) source A through line 1
to a fluid temperature control system B which will cool the liquid nitrogen (LIN)
and form gaseous nitrogen (GAN). Such a system may be a CUMULUS system available from
Linde AG. The gaseous nitrogen (GAN) is fed from the fluid temperature control system
B through line 2 to the chamber C where it will enter a nozzle D.
[0056] The nozzle D will also be in fluid communication with the produced water present
in chamber C and will direct the produced water and gaseous nitrogen (GAN) to an interior
pipe F where they will form slush or ice crystals in the interior pipe F. This slush
or ice crystals will be forced through the top of the interior pipe F where they can
be recovered as fresh water from the chamber C through line 6.
[0057] The gaseous nitrogen (GAN) will be recovered from the top of the chamber C where
it will be fed through line 7 to the fluid temperature control system B where it can
then be cooled in temperature and fed through line 8 back to the chamber C and nozzle
D.
[0058] A scraper E is mounted circumferentially around the porous pipe G. The scraper E
will have arms extending outwards from its center and these arms will contact at least
a portion of the height of the interior wall of the chamber C. This scraper E will
be driven by an electric motor or exhaust gaseous nitrogen.
[0059] This scraper E will be operated periodically and the arms will contact salts that
have formed on the interior walls of the chamber C. These salts are the byproducts
of contaminants present in the produced water and will be separated out as a result
of the operation of the crystallizer.
[0060] The salts will be removed from the bottom of the chamber C through line 5 where they
can be recovered, purified further as necessary and reused in suitable industrial
operations or disposed of in an environmentally responsible manner.
[0061] It will be understood that the embodiments described herein are merely exemplary,
and that one skilled in the art may make variations and modifications without departing
from the spirit and scope of the present invention. All such variations and modifications
are intended to be included within the scope of the present invention as described
and claimed herein. Further, all embodiments disclosed are not necessarily in the
alternative, as various embodiments of the present invention may be combined to provide
the desired result.
List of reference signs
[0062]
- 1
- line or pipe or tube from liquid nitrogen (LIN) source A to fluid temperature control
system B
- 2
- line or pipe or tube from fluid temperature control system B to chamber C
- 4
- line or pipe or tube for feeding or introducing produced water
- 5
- line or pipe or tube for removing salts from bottom of chamber C
- 6
- line or pipe or tube for recovering fresh water
- 7
- line or pipe or tube from chamber C to fluid temperature control system B
- 8
- line or pipe or tube from fluid temperature control system B to chamber C and to nozzle
D
- A
- liquid nitrogen (LIN) source
- B
- fluid temperature control system
- C
- chamber
- D
- nozzle
- E
- scraper
- F
- interior pipe
- G
- porous pipe
1. A crystallizer comprising
- a chamber (C) being cylindrical in shape and comprising an interior wall and a top
and a bottom, the chamber (C) being in fluid communication with a pipe (4) for introducing
produced water, the pipe (4) being in fluid communication with a porous pipe (G) to
allow for distribution of the produced water through the interior of the chamber (C);
- a source of gaseous nitrogen (GAN) in fluid communication with a nozzle (D) wherein
the nozzle (D) is located inside the chamber (C) and is in fluid communication with
an interior pipe (F) which is further in fluid communication with the produced water;
- at least one scraper (E) which is mounted circumferentially about the porous pipe
(G) and has arms that extend outwardly from the scraper (E) center in contact with
the interior wall of the chamber (C) thereby scraping salt crystals on the interior
wall of the chamber (C); and
- a top pipe in fluid communication with the chamber (C) thereby to remove fresh water
from the chamber (C).
2. The crystallizer according to claim 1 wherein the gaseous nitrogen (GAN) is formed
by feeding liquid nitrogen (LIN) to a fluid temperature control system (B).
3. The crystallizer according to claim 2 wherein gaseous nitrogen (GAN) is recovered
from the chamber (C).
4. The crystallizer according to claim 3 wherein the gaseous nitrogen (GAN) is fed to
the fluid temperature control system (B).
5. The crystallizer according to at least one of claims 1 to 4 having salt removal means,
in particular salt crystal removal means, from the bottom of the chamber (C), in particular
for recovering, for being purified further and/or for being reused or disposed of.
6. A method for treating produced water, comprising the steps of:
a) feeding (4) produced water to a porous pipe (G) in a chamber (C) wherein the chamber
(C) is cylindrically shaped having an interior wall with a top and a bottom;
b) feeding gaseous nitrogen (GAN) to a nozzle (D) present in the chamber (C), wherein
the nozzle (D) is in fluid communication with an interior pipe (F);
c) feeding the produced water to the interior pipe (F) wherein slush is formed in
the interior pipe (F) and this slush is forced through the interior pipe (F) to the
top of the chamber (C);
d) operating at least one scraper (E) which is mounted circumferentially about the
porous pipe (G) and has arms that extend outwardly from the scraper (E) center in
contact with the interior wall of the chamber (C) wherein the scraper (E) will contact
and remove salt crystals from the interior walls of the chamber (C);
e) recovering salts, in particular salt crystals, from the bottom of the chamber (C);
and
f) recovering fresh water from the chamber (C).
7. The method according to claim 6 wherein the produced water is from an oil and gas
production process.
8. The method according to claim 6 or 7 wherein the porous pipe (G) distributes the produced
water throughout the chamber (C).
9. The method according to at least one of claims 6 to 8 wherein the nozzle (D) feeds
the produced water and gaseous nitrogen (GAN) to the interior pipe (F).
10. The method according to at least one of claims 6 to 9 wherein slush or ice crystals
are formed in the interior pipe (F).
11. The method according to at least one of claims 6 to 10 wherein the scraper (E) is
operated periodically.
12. The method according to at least one of claims 6 to 11 wherein the scraper (E) rotates
between 0 degree and 180 degree.
13. The method according to at least one of claims 6 to 12 wherein the scraper (E) is
driven by an electric motor or through exhaust gaseous nitrogen (GAN).
14. The method according to at least one of claims 6 to 13 wherein the salts are removed
from the bottom of the chamber (C) for recovering, purifying further and/or reusing
or disposing of.
15. The method according to at least one of claims 6 to 14 wherein the fresh water is
recovered from the chamber (C) through a top pipe.